论文标题

甲醇水混合物在冷却上的温度依赖性结构:X射线和中子衍射以及分子动力学模拟

Temperature-dependent structure of methanol-water mixtures on cooling: X-ray and neutron diffraction and molecular dynamics simulations

论文作者

Pethes, Ildikó, Pusztai, László, Ohara, Koji, Ohara, Shinji, Darpentigny, Jacques, Temleitner, László

论文摘要

在低温下,高能同步加速器X射线和中子衍射已经研究了甲醇 - 水液体混合物。因此,我们能够在整个组合物范围内报告X射线和中子加权总散射结构因子的第一组(在12个不同的甲醇浓度(x $ _M $)中,从10到100 mol%),从环境降低到混合物的冰点的温度下。新的衍射数据后来可以用作未来的理论和仿真研究中的参考。测得的数据通过分子动力学模拟来解释,其中甲醇的所有原子OPLS/AA力场模型都与SPC/E和TIP4P/2005水电位相结合。尽管发现TIP4P/2005水模型更为成功,但两种组合都至少与测得的衍射数据提供了至少半定量的一致性。从模拟的粒子构型中,已经确定了部分径向分布函数以及氢键数量的各种分布。作为一般趋势,冷却后的平均氢键数量增加。但是,甲醇分子之间的氢键数量略微降低,浓度范围内的温度降低。 30和60 mol%酒精含量。从室温降至193 K的70摩尔%以上的水氢键相同。

Methanol-water liquid mixtures have been investigated by high-energy synchrotron X-ray and neutron diffraction at low temperatures. We are thus able to report the first complete sets of both X-ray and neutron weighted total scattering structure factors over the entire composition range (at 12 different methanol concentrations (x$_M$) from 10 to 100 mol%) and at temperatures from ambient down to the freezing points of the mixtures. The new diffraction data may later be used as reference in future theoretical and simulation studies. The measured data are interpreted by molecular dynamics simulations, in which the all atom OPLS/AA force field model for methanol is combined with both the SPC/E and TIP4P/2005 water potentials. Although the TIP4P/2005 water model was found to be somewhat more successful, both combinations provide at least semi-quantitative agreement with measured diffraction data. From the simulated particle configurations, partial radial distribution functions, as well as various distributions of the number of hydrogen bonds have been determined. As a general trend, the average number of hydrogen bonds increases upon cooling. However, the number of hydrogen bonds between methanol molecules slightly decreases with lowering temperatures in the concentration range between ca. 30 and 60 mol % alcohol content. The same is valid for water-water hydrogen bonds above 70 mol % of methanol content, from room temperature down to 193 K.

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